A Specialized Polythioamide‐Binding Protein Confers Antibiotic Self‐Resistance in Anaerobic Bacteria

ORCID
0000-0002-8038-5937
Zugehörigkeit
Research Unit Biomolecular Chemistry Leibniz Institute for Natural Product Research and Infection Biology Hans Knöll Institute Adolf-Reichwein-Straße 23 07745 Jena Germany
Gude, Finn;
ORCID
0000-0001-8822-7207
Zugehörigkeit
Research Unit Biomolecular Chemistry Leibniz Institute for Natural Product Research and Infection Biology Hans Knöll Institute Adolf-Reichwein-Straße 23 07745 Jena Germany
Molloy, Evelyn M.;
ORCID
0000-0002-3705-9423
Zugehörigkeit
Research Unit Biomolecular Chemistry Leibniz Institute for Natural Product Research and Infection Biology Hans Knöll Institute Adolf-Reichwein-Straße 23 07745 Jena Germany
Horch, Therese;
GND
1248957784
ORCID
0000-0003-2718-2409
Zugehörigkeit
Research Unit Biomolecular Chemistry Leibniz Institute for Natural Product Research and Infection Biology Hans Knöll Institute Adolf-Reichwein-Straße 23 07745 Jena Germany
Dell, Maria;
ORCID
0000-0002-7410-5169
Zugehörigkeit
Research Unit Biomolecular Chemistry Leibniz Institute for Natural Product Research and Infection Biology Hans Knöll Institute Adolf-Reichwein-Straße 23 07745 Jena Germany
Dunbar, Kyle L.;
ORCID
0000-0003-3510-8276
Zugehörigkeit
Research Unit Biomolecular Chemistry Leibniz Institute for Natural Product Research and Infection Biology Hans Knöll Institute Adolf-Reichwein-Straße 23 07745 Jena Germany
Krabbe, Jana;
ORCID
0000-0002-1660-340X
Zugehörigkeit
Center for Protein Assemblies Technical University of Munich Ernst-Otto-Fischer-Straße 8 85747 Garching Germany
Groll, Michael;
GND
121283097
ORCID
0000-0002-0367-337X
Zugehörigkeit
Faculty of Biological Sciences Friedrich Schiller University Jena 07743 Jena Germany
Hertweck, Christian

Understanding antibiotic resistance mechanisms is central to the development of anti‐infective therapies and genomics‐based drug discovery. Yet, many knowledge gaps remain regarding the resistance strategies employed against novel types of antibiotics from less‐explored producers such as anaerobic bacteria, among them the Clostridia. Through the use of genome editing and functional assays, we found that CtaZ confers self‐resistance against the copper chelator and gyrase inhibitor closthioamide (CTA) in Ruminiclostridium cellulolyticum . Bioinformatics, biochemical analyses, and X‐ray crystallography revealed CtaZ as a founding member of a new group of GyrI‐like proteins. CtaZ is unique in binding a polythioamide scaffold in a ligand‐optimized hydrophobic pocket, thereby confining CTA. By genome mining using CtaZ as a handle, we discovered previously overlooked homologs encoded by diverse members of the phylum Firmicutes, including many pathogens. In addition to characterizing both a new role for a GyrI‐like domain in self‐resistance and unprecedented thioamide binding, this work aids in uncovering related drug‐resistance mechanisms.

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